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Nanoengineered γ MnO2 Accelerates the Degradation of Antibiotic-Resistant Biofilms

delete2026-02-27
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M
Moorthy Maruthapandi *
A
Arulappan Durairaj
G
Gila Jacobi
S
Sivan Shoshani
E
Ehud Banin
J
John H. T. Luong
A
A. Gedanken *
DOI:10.3390/life16030367delete
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Abstract

Abstract

En 中文
Bacterial biofilms remain a major challenge in clinical infections due to their dense extracellular polymeric substance (EPS) matrix and strong resistance to conventional antibiotics. This study reports manganese dioxide (MnO2) nanoparticles capable of autonomous navigation toward bacterial clusters, mechanical penetration of biofilm structures, redox-driven membrane disruption, and synergistic oxidative stress. The nanoparticles exhibit directional movement attributed to a combination of negatively charged surface potential, asymmetric topology, and catalytic reactivity toward bacterial metabolites. MnO2 demonstrates potent antibiofilm activity against MRSA and MDR E. coli (>98% eradication) and partial activity against Pseudomonas aeruginosa. Time-lapse microscopy, EPR spectroscopy, XPS analysis, and SEM imaging reveal that MnO2 disrupts both EPS and cell membranes while maintaining structural integrity throughout treatment. Cytotoxicity assays confirm ≥85% viability in human fibroblasts and keratinocytes at therapeutic concentrations. MnO2 shows controlled biodegradation into Mn2+ ions, which participate in physiological pathways and undergo renal clearance. These findings support MnO2 nanoparticles as promising biofilm-targeting agents for topical formulations, wound care, and implant coatings.
Keywords:
MnO<sub>2</sub> nanoparticles
ultrasonication
mechanical penetration
biofilm eradication
reactive oxygen species (ROS)
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Life cover
Life
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university college cork
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